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Magneli-Phase Ti4O7 Nanosphere Electrocatalyst Support for Carbon-Free Oxygen Electrodes in Lithium-Oxygen Batteries

机译:锂 - 氧电池中的无碳氧电极的Magneli-Apace Ti4O7纳米晶体电催化剂

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Lithium-oxygen batteries have been considerably researched due to their potential for high energy density compared to some rechargeable batteries. However, it is known that the stability of a carbon-based oxygen electrode is insufficient owing to the promotion of carbonate formation, which results in capacity fading and large overpotential in lithium-oxygen batteries. To improve the chemical stability in organic-based electrolytes, alternative electrocatalyst support materials are required. The Ti-O crystal system appears to provide a good compromise between electrochemical performance and cost and is thus an interesting material for further investigation. Here, we investigate a carbon-free electrode with the goal of identifying routes for its successful optimization. To replace carbon materials as an electrocatalyst support, Magneli Ti4O7 nanospheres were synthesized from anatase TiO2 nanospheres via a controlled thermochemical reduction. The Magna Ti4O7 nanospheres demonstrated effective overpotential characteristics (1.53 V) compared to the anatase TiO2 nanospheres (1.91 V) during charge-discharge cycling at a current rate of 100 mA g(-1). Additionally, RuO2@Magneli-Ti4O7 nanospheres were prepared as a bifunctional catalyst-containing oxygen electrode for lithium-oxygen batteries, providing a remarkably reduced overpotential (0.9 V).
机译:由于与一些可充电电池相比,由于它们的高能量密度的潜力,锂 - 氧气电池已大大研究。然而,众所周知,由于促进碳酸酯形成,碳基氧电极的稳定性不足,这导致锂 - 氧气电池中的容量衰落和大量的过电位。为了提高有机电解质中的化学稳定性,需要替代的电催化剂载体材料。 Ti-O晶体系统似乎在电化学性能和成本之间提供良好的折衷,因此是一种进一步调查的有趣材料。在这里,我们研究了一种碳电极,目的是识别其成功优化的路线。为了将碳材料替换为电催化剂载体,通过受控的热化学减少从锐钛矿TiO2纳米球中合成Magneli Ti4O7纳米球。与锐钛矿TiO2纳米载体(1.91V)以100mA G(-1)的电流速率相比,MANGA TI4O7纳米纳米球体显示了有效的过电特性(1.53V)。另外,将RuO2 @ magneli-Ti4O7纳米纳米纳米体制成用于锂 - 氧气电池的含双常常催化剂的氧电极,提供显着减少的过电(0.9V)。

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